Literature DB >> 17278503

Depth absorbed dose and LET distributions of therapeutic 1H, 4He, 7Li, and 12C beams.

Johanna Kempe1, Irena Gudowska, Anders Brahme.   

Abstract

The depth absorbed dose and LET (linear energy transfer) distribution of different ions of clinical interest such as 1H, 4He, 7Li, and 12C ions have been investigated using the Monte Carlo code SHIELD-HIT. The energies of the projectiles correspond to ranges in water and soft tissue of approximately 260 mm. The depth dose distributions of the primary particles and their secondaries have been calculated and separated with regard to their low and high LET components. A LET value below 10 eV/nm can generally be regarded as low LET and sparsely ionizing like electrons and photons. The high LET region may be assumed to start at 20 eV/nm where on average two double-strand breaks can be formed when crossing the periphery of a nucleosome, even though strictly speaking the LET limits are not sharp and ought to vary with the charge and mass of the ion. At the Bragg peak of a monoenergetic high energy proton beam, less than 3% of the total absorbed dose is comprised of high LET components above 20 eV/nm. The high LET contribution to the total absorbed dose in the Bragg peak is significantly larger with increasing ion charge as a natural result of higher stopping power and lower range straggling. The fact that the range straggling and multiple scattering are reduced by half from hydrogen to helium increases the possibility to accurately deposit only the high LET component in the tumor with negligible dose to organs at risk. Therefore, the lateral penumbra is significantly improved and the higher dose gradients of 7Li and 12C ions both longitudinally and laterally will be of major advantage in biological optimized radiation therapy. With increasing charge of the ion, the high LET absorbed dose in the beam entrance and the plateau regions where healthy normal tissues are generally located is also increased. The dose distribution of the high LET components in the 7Li beam is only located around the Bragg peak, characterized by a Gaussian-type distribution. Furthermore, the secondary particles produced by high energy 7Li ions in tissuelike media have mainly low LET character both in front of and beyond the Bragg peak.

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Year:  2007        PMID: 17278503     DOI: 10.1118/1.2400621

Source DB:  PubMed          Journal:  Med Phys        ISSN: 0094-2405            Impact factor:   4.071


  7 in total

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Authors:  Fada Guan; Christopher Peeler; Lawrence Bronk; Changran Geng; Reza Taleei; Sharmalee Randeniya; Shuaiping Ge; Dragan Mirkovic; David Grosshans; Radhe Mohan; Uwe Titt
Journal:  Med Phys       Date:  2015-11       Impact factor: 4.071

2.  DNA Condensation with a Boron-Containing Cationic Peptide for Modeling Boron Neutron Capture Therapy.

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5.  Dose and linear energy transfer distributions of primary and secondary particles in carbon ion radiation therapy: A Monte Carlo simulation study in water.

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Journal:  J Med Phys       Date:  2015 Oct-Dec

6.  Determination of Integral Depth Dose in Proton Pencil Beam Using Plane-parallel Ionization Chambers.

Authors:  Phatthraporn Thasasi; Sirinya Ruangchan; Puntiwa Oonsiri; Sornjarod Oonsiri
Journal:  Int J Part Ther       Date:  2022-06-03

7.  Variations in the Processing of DNA Double-Strand Breaks Along 60-MeV Therapeutic Proton Beams.

Authors:  Pankaj Chaudhary; Thomas I Marshall; Frederick J Currell; Andrzej Kacperek; Giuseppe Schettino; Kevin M Prise
Journal:  Int J Radiat Oncol Biol Phys       Date:  2015-07-29       Impact factor: 7.038

  7 in total

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